Research on optical current transformer based on the fiber Bragg grating

被引:0
作者
Xiong Y. [1 ]
Zhao H. [1 ]
Zhang J. [2 ]
Zhao H. [1 ]
Wang S. [4 ]
机构
[1] Key Laboratory of Engineering Dielectric and Its Application, Harbin University of Science and Technology, Harbin
[2] Physics and Electronica Engineering College, Harbin Normal University, Harbin
[3] VISCAS Wire and Cable Accessories Corporation, Shenyang
[4] Tyco Electronics Co., Ltd.
来源
Guangxue Xuebao/Acta Optica Sinica | 2010年 / 30卷 / 04期
关键词
Fiber Bragg grating (FBG); Fiber optics; Frequency spectrum analysis; Giant magnetostrictive material (GMM); Optical current transformer;
D O I
10.3788/AOS20103004.0949
中图分类号
学科分类号
摘要
An optical current transformer is constructed by exposing gain mangetostrictive material (GMM)-FBG system to current-induced magnetic field. Ferro-magnetic materials are used to design a loop to constraint and conduct the flux into GMM. The permanent magnetic material is used in loop to establish a bias flux to form a working bias for the system. Finite element method is used to analyze and design the loop structure and the size. Coarse wavelength division multiplexing (CWDM) device is used to demodulate the alternating strain on FBG caused wavelength drift to realize sensing of the current. In the experiment, the maximum current is 186 A and the full scale accuracy is 4.3% when the system workes in linear region by setting the bias in 30 kA/m. Fast Fourier transform algorithm (FFT) is used to analyze the harmonic component of the output signal to evaluate the quality. It is demonstrated that the output signal is not influenced by hysteresis and nonlinear effect of GMM in linear region.
引用
收藏
页码:949 / 953
页数:4
相关论文
共 14 条
[1]  
Wang T., The study of high voltage photoelectric current transformer, pp. 3-14, (2000)
[2]  
Wu F., Li L., Li Z., Theoretical analysis of fiber Bragg grating characterization by applying transverse force, Chinese J. Lasers, 33, 4, pp. 472-476, (2006)
[3]  
Liu C., Zhang W., Jiang M., Et al., Study on self-induced chirping for fiber Bragg grating, Acta Optica Sinica, 28, 9, pp. 1671-1674, (2008)
[4]  
Cao S., Wang B., Yan R., Et al., The hysteretic non-linearity dynamic model of giant magnetostrictive braker, Chin. Soc. Electrical Engng., 23, 11, pp. 149-153, (2003)
[5]  
Calkins F.T., Smith R.C., Flatau A.B., Energy-based hysteresis model for magnetostrictive transducers, IEEE Trans. Magnetics, 36, 2, pp. 429-439, (2000)
[6]  
Mora J., Diez A., Cruz J.L., A magnetostrictive sensor interrogated by fiber gratings for DC-current and temperature discrimination, IEEE Photon. Technol. Lett., 12, 12, pp. 1680-1682, (2000)
[7]  
Reilly D., Willshire A.J., Fusiek G., Et al., A fiber Bragg grating based sensor for simultaneous AC current and temperature measurement, IEEE Sens. J., 6, 6, pp. 1539-1542, (2006)
[8]  
Liao B., Feng D., Zhao Q., Et al., FBG current sensor theoretical and experimental research, Acta Optica Sinica, 22, 9, pp. 1092-1095, (2002)
[9]  
Xiong Y., Zhao H., Zhang J., Et al., A GMM and FBG based on AC current sensor, Trans. China Electrotechnol. Soc., 21, 4, pp. 16-19, (2006)
[10]  
Yao Y., Yi B., Xiao J., Current measurement based on giant magnetostriction material and fiber Bragg grating, J. Wuhan University Technol., 30, 8, pp. 124-127, (2008)